EBK INTRODUCTORY CHEMISTRY
EBK INTRODUCTORY CHEMISTRY
8th Edition
ISBN: 9780100480483
Author: DECOSTE
Publisher: YUZU
Question
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Chapter 15, Problem 74QAP
Interpretation Introduction

(a)

Interpretation:

The volume of 0.101M

HNO3 required to neutralize the given solution is to be calculated.

12.7mL of 0.501M

NaOH.

Concept Introduction:

The atomic mass of an element is defined as the sum of number of protons and number of neutrons. Molar mass of an element is determined from atomic mass of an element.

The number of moles is calculated by the formula,

Moles=MassgMolarmass

The molarity is calculated by the formula,

Molarity=NumberofmolesofsoluteVolumeofsolution.

Expert Solution
Check Mark

Answer to Problem 74QAP

The volume of 0.101M

HNO3 required to neutralize the given solution is 63.0mL.

Explanation of Solution

The value of M1, V1 and M2 is given to be 0.501M, 12.7mL and 0.101M respectively. V2 is the volume which is required to neutralize the given reaction.

The balanced equation when HNO3 reacts with NaOH is shown below.

NaOH+HNO3H2O+NaNO3

The above reaction indicates that one equivalent of HNO3 required to neutralize one equivalent of NaOH.

The relationship between concentration and volume of NaOH and HNO3 solutions is shown below.

M1V1=M2V2

Where,

  • M1 is the molarity of NaOH solution.
  • V1 is the volume of NaOH solution.
  • M2 is the molarity of HNO3 solution.
  • V2 is the volume of HNO3 solution.

Rearrange an above expression to calculate the value of V2.

V2=M1×V1M2

Substitute the value of M1, M2 and V1 in the above expression.

V2=0.501M×12.7mL0.101M=63.0mL

Therefore, the volume of 0.101M

HNO3 required to neutralize the given solution is 63.0mL.

Interpretation Introduction

(b)

Interpretation:

The volume of 0.101M

HNO3 required to neutralize the given solution is to be calculated.

24.9mL of 0.00491M

BaOH2.

Concept Introduction:

The atomic mass of an element is defined as the sum of number of protons and number of neutrons. Molar mass of an element is determined from atomic mass of an element.

The number of moles is calculated by the formula,

Moles=MassgMolarmass

The molarity is calculated by the formula,

Molarity=NumberofmolesofsoluteVolumeofsolution.

Expert Solution
Check Mark

Answer to Problem 74QAP

The volume of 0.101M

HNO3 required to neutralize the given solution is 2.42mL.

Explanation of Solution

The value of M1, V1 and M2 is given to be 0.00491M, 24.9mL and 0.101M respectively. V2 is the volume which is required to neutralize the given reaction.

The balanced equation when HNO3 reacts with BaOH2 is shown below.

BaOH2+2HNO32H2O+BaNO32

The above reaction indicates that two equivalents of HNO3 required to neutralize one equivalent of BaOH2.

The relationship between concentration and volume of BaOH2 and HNO3 solutions is shown below.

M1V1=2×M2V2

Where,

  • M1 is the molarity of BaOH2 solution.
  • V1 is the volume of BaOH2 solution.
  • M2 is the molarity of HNO3 solution.
  • V2 is the volume of HNO3 solution.

Rearrange an above expression to calculate the value of V2.

V2=2×M1×V1M2

Substitute the value of M1, M2 and V1 in the above expression.

V2=2×0.00491M×24.9mL0.101M=2.42mL

Therefore, the volume of 0.101M

HNO3 required to neutralize the given solution is 2.42mL.

Interpretation Introduction

(c)

Interpretation:

The volume of 0.101M

HNO3 required to neutralize the given solution is to be calculated.

49.1mL of 0.103M

NH3.

Concept Introduction:

The atomic mass of an element is defined as the sum of number of protons and number of neutrons. Molar mass of an element is determined from atomic mass of an element.

The number of moles is calculated by the formula,

Moles=MassgMolarmass

The molarity is calculated by the formula,

Molarity=NumberofmolesofsoluteVolumeofsolution.

Expert Solution
Check Mark

Answer to Problem 74QAP

The volume of 0.101M

HNO3 required to neutralize the given solution is 50.07mL.

Explanation of Solution

The value of M1, V1 and M2 is given to be 0.103M, 49.1mL and 0.101M respectively. V2 is the volume which is required to neutralize the given reaction.

The balanced equation when HNO3 reacts with NH3 is shown below.

NH3+HNO3NH4NO3

The above reaction indicates that one equivalent of HNO3 reacts with one equivalent of NH3.

The relationship between concentration and volume of NH3 and HNO3 solutions is shown below.

M1V1=M2V2

Where,

  • M1 is the molarity of NH3 solution.
  • V1 is the volume of NH3 solution.
  • M2 is the molarity of HNO3 solution.
  • V2 is the volume of HNO3 solution.

Rearrange an above expression to calculate the value of V2.

V2=M1×V1M2

Substitute the value of M1, M2 and V1 in the above expression.

V2=0.103M×49.1mL0.101M=50.07mL

Therefore, the volume of 0.101M

HNO3 required to neutralize the given solution is 50.07mL.

Interpretation Introduction

(d)

Interpretation:

The volume of 0.101M

HNO3 required to neutralize the given solution is to be calculated.

1.21L of 0.102M

KOH.

Concept Introduction:

The atomic mass of an element is defined as the sum of number of protons and number of neutrons. Molar mass of an element is determined from atomic mass of an element.

The number of moles is calculated by the formula,

Moles=MassgMolarmass

The molarity is calculated by the formula,

Molarity=NumberofmolesofsoluteVolumeofsolution.

Expert Solution
Check Mark

Answer to Problem 74QAP

The volume of 0.101M

HNO3 required to neutralize the given solution is 1.22L.

Explanation of Solution

The value of M1, V1 and M2 is given to be 0.102M, 1.21L and 0.101M respectively. V2 is the volume which is required to neutralize the given reaction.

The balanced equation when HNO3 reacts with KOH is shown below.

KOH+HNO3KNO3+H2O

The above reaction indicates that one equivalent of HNO3 reacts with one equivalent of KOH.

The relationship between concentration and volume of KOH and HNO3 solutions is shown below.

M1V1=M2V2

Where,

  • M1 is the molarity of KOH solution.
  • V1 is the volume of KOH solution.
  • M2 is the molarity of HNO3 solution.
  • V2 is the volume of HNO3 solution.

Rearrange an above expression to calculate the value of V2.

V2=M1×V1M2

Substitute the value of M1, M2 and V1 in the above expression.

V2=0.102M×1.21L0.101M=1.22L

Therefore, the volume of 0.101M

HNO3 required to neutralize the given solution is 1.22L.

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Chapter 15 Solutions

EBK INTRODUCTORY CHEMISTRY

Ch. 15.8 - ercise 15.10 Calculate the normality of a solution...Ch. 15.8 - Prob. 15.11SCCh. 15 - ou have a solution of table sail in water. What...Ch. 15 - onsider a sugar solution (solution A) with...Ch. 15 - You need to make 150.0 mL of a 0.10 M NaCI...Ch. 15 - ou have two solutions containing solute A. To...Ch. 15 - m>5. Which of the following do you need to know to...Ch. 15 - onsider separate aqueous solutions of HCI and...Ch. 15 - Prob. 7ALQCh. 15 - an one solution have a greater concentration than...Ch. 15 - Prob. 9ALQCh. 15 - You have equal masses of different solutes...Ch. 15 - Which of the following solutions contains the...Ch. 15 - As with all quantitative problems in chemistry,...Ch. 15 - Prob. 13ALQCh. 15 - Prob. 14ALQCh. 15 - solution is a homogeneous mixture. Can you give an...Ch. 15 - ow do the properties of a nonhomogeneous...Ch. 15 - Prob. 3QAPCh. 15 - Prob. 4QAPCh. 15 - n Chapter 14. you learned that the bonding forces...Ch. 15 - n oil spill spreads out on the surface of water,...Ch. 15 - . The “Chemistry in Focus” segment Water, Water...Ch. 15 - Prob. 8QAPCh. 15 - Prob. 9QAPCh. 15 - Prob. 10QAPCh. 15 - A solution is a homogeneous mixture and, unlike a...Ch. 15 - Prob. 12QAPCh. 15 - How do we define the mass percent composition of a...Ch. 15 - Prob. 14QAPCh. 15 - Calculate the percent by mass of solute in each of...Ch. 15 - Calculate the percent by mass of solute in each of...Ch. 15 - Prob. 17QAPCh. 15 - Prob. 18QAPCh. 15 - A sample of an iron alloy contains 92.1 g Fe. 2.59...Ch. 15 - Consider the iron alloy described in Question 19....Ch. 15 - An aqueous solution is to be prepared that will be...Ch. 15 - Prob. 22QAPCh. 15 - A solution is to be prepared that will be 4.50% by...Ch. 15 - Prob. 24QAPCh. 15 - Prob. 25QAPCh. 15 - Hydrogen peroxide solutions sold in drugstores as...Ch. 15 - Prob. 27QAPCh. 15 - A solvent sold for use in the laboratory contains...Ch. 15 - Prob. 29QAPCh. 15 - Prob. 30QAPCh. 15 - What is a standard solution? 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Suppose 325 in L of 0.150 M NaOH is needed for...Ch. 15 - 61. How much water must be added w 500. mL of...Ch. 15 - An experiment calls for 100. mL of 1.25 M HC1. All...Ch. 15 - Prob. 63QAPCh. 15 - 64. Generally only the carbonates of the Group I...Ch. 15 - 65. Many metal ions are precipitated from solution...Ch. 15 - 66. Calcium oxalate, CaCO4, is very insoluble in...Ch. 15 - 67. When aqueous solutions of lead(II) ion are...Ch. 15 - 68. Aluminum ion may be precipitated from aqueous...Ch. 15 - 69. What volume of 0.502 M NaOH solution would be...Ch. 15 - 70. What volume of a 0.500 M NaOH solution would...Ch. 15 - 71. A sample of sodium hydrogen carbonate solid...Ch. 15 - 72. The total acidity in water samples can be...Ch. 15 - Prob. 73QAPCh. 15 - Prob. 74QAPCh. 15 - Prob. 75QAPCh. 15 - Prob. 76QAPCh. 15 - 77. 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L of water is added to 3.0 L of 6.0 M...Ch. 15 - You pour 150.0 mL of a 0.250 M lead(ll) nitrate...Ch. 15 - How many grams of Ba (NO3)2are required to...Ch. 15 - Prob. 128APCh. 15 - What volume of 0.250 M HCI is required to...Ch. 15 - Prob. 130APCh. 15 - Prob. 131APCh. 15 - Prob. 132APCh. 15 - How many milliliters of 0.105 M NaOH are required...Ch. 15 - Prob. 134APCh. 15 - Prob. 135APCh. 15 - Prob. 136APCh. 15 - Prob. 137CPCh. 15 - A solution is prepared by dissolving 0.6706 g of...Ch. 15 - What volume of 0.100 M NaOH is required to...Ch. 15 - Prob. 140CPCh. 15 - A 450.O-mL sample of a 0.257 M solution of silver...Ch. 15 - A 50.00-mL sample of aqueous Ca(OH)2 requires...Ch. 15 - When organic compounds containing sulfur are...Ch. 15 - Prob. 1CRCh. 15 - Prob. 2CRCh. 15 - Prob. 3CRCh. 15 - Prob. 4CRCh. 15 - Prob. 5CRCh. 15 - Prob. 6CRCh. 15 - Prob. 7CRCh. 15 - Prob. 8CRCh. 15 - Prob. 9CRCh. 15 - Prob. 10CRCh. 15 - Prob. 11CRCh. 15 - Without consulting your textbook, list and explain...Ch. 15 - What does “STP’ stand for? 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